Color metallic pigment, method for producing same, and coating composition and cosmetic containing same
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example 1
[0118]To 3 g of aqueous hydrogen peroxide containing 30 mass % of hydrogen peroxide was added 0.3 g of a metal molybdenum powder in portions, thereby causing the reaction between these components. The resultant solution was dissolved in 500 g of isopropyl alcohol (hereinafter, abbreviated as “IPA”), and thereto was further added 40 g (i.e., 30 g in terms of aluminum content) of a commercially available aluminum pigment (flaky aluminum, trade name: “5422NS” (produced by Toyo Aluminium K. K.), solid content: 75 mass %, average particle diameter: 19 μm, average thickness: 1 μm)) as a metallic pigment. The resultant was stirred and mixed at 75° C. for 1 hour, thereby obtaining a slurry. In this manner, a metallic pigment having molybdenum oxide formed on the surface thereof was obtained as an under layer.
[0119]Subsequently, aqueous ammonia and 80 g of water were added to the slurry to adjust the pH value of the slurry to 10.0. To the pH-adjusted slurry (i.e., solvent mainly containing a...
example 2
[0123]A silica-coated aluminum pigment (10 g) obtained in the same amorphous silicon oxide film layer formation step as in Example 1 was dispersed in 500 g of an aqueous solution containing 50 g of cerium nitrate with stirring, and thereto was dropwise added a 5% aqueous ammonia solution in portions until the pH value of the solution reached 7.0 while keeping the slurry temperature at 40° C. After the completion of the dropwise addition, the stirring was continued for 1 hour. The resultant slurry was again subjected to a solid-liquid separation procedure and washed with water to allow a cerium oxide layer to be deposited on the surface of the silica-coated aluminum pigment, thereby forming the cerium oxide layer as a metal oxide layer (metal oxide layer formation step). Hereinafter, the metallic pigment in this state was termed “metal-oxide-layer-covered aluminum pigment”, as in the case of Example 1.
[0124]Then, the resultant slurry was subjected to a solid-liquid separation procedu...
example 3
[0126]A silica-coated aluminum pigment (10 g) obtained in the same amorphous silicon oxide film layer formation step as in Example 1 was dispersed in 400 g of an aqueous solution containing 30 g of tetrabutoxytitanium with stirring, and thereto was dropwise added a 5% aqueous ammonia solution in portions until the pH value of the solution reached 10.0. After the completion of the dropwise addition, the stirring was continued for 1 hour. The resultant slurry was subjected to a solid-liquid separation procedure and washed with water to allow a titanium oxide layer to be deposited on the surface of the silica-coated aluminum pigment, thereby forming a titanium oxide layer as a metal oxide layer (metal oxide layer formation step). Hereinafter, the metallic pigment in this state was termed “metal-oxide-layer-covered aluminum pigment”, as in the case of Example 1.
[0127]Then, the resultant slurry was subjected to a solid-liquid separation procedure, washed with water, then dispersed in 200...
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